이것은 무엇인가?
A metal as strong as steel at about half the weight, which does not corrode in seawater or in the human body.
왜 중요한가?
Landing gear, jet-engine fan blades, submarine hulls and hip replacements all use titanium because nothing else combines that strength, weight and corrosion resistance.
Where it is in the Earth
Titanium is the ninth most abundant element in the Earth's crust, yet it almost never occurs in a form that is straightforward to mine. The reason is chemical: titanium bonds readily with oxygen and iron, which means it is dispersed through many common rock-forming minerals at concentrations too low to be worth processing. Economic deposits form only where geological processes have worked to separate and concentrate the titanium-bearing minerals into a relatively small volume of rock or sediment.
The two minerals that matter commercially are ilmenite and rutile. Both are oxides — that is, titanium combined with oxygen, in ilmenite's case with iron added as well. They form originally in igneous and metamorphic rocks, particularly in anorthosite complexes (bodies of coarse-grained rock rich in calcium feldspar) and in mafic intrusions (rocks that crystallised from magmas relatively rich in iron and magnesium). Because ilmenite and rutile are dense and chemically resistant, they survive the weathering and erosion that break down the surrounding rock, and rivers carry them downstream as heavy mineral grains. Where wave action and longshore drift concentrate these grains against a coastline, they accumulate as heavy mineral sands — often called mineral sands deposits. The same sorting process can happen in ancient, now-buried beaches that were later covered by younger sediments, producing what the industry calls fossil or palaeodune deposits.
This explains the geographical pattern visible in the production table. The largest known concentrations of mineral sands lie around the Indian Ocean rim, in parts of Australia, southern Africa, India and Sri Lanka, as well as along some Atlantic coastlines. Anorthosite-hosted deposits occur in Norway, Canada and parts of China. The location of a country's resource is therefore largely an accident of where ancient coastlines ran and where the right kind of igneous activity took place, not of any policy or industrial decision.
Getting it out
Most titanium-bearing ore is mined as loose sand — or as soft, sandy rock that behaves like loose sand once excavated. This makes open-pit or open-cast methods the natural choice. Heavy machinery strips away overlying material (called overburden) to expose the ore horizon, and the mineral-bearing sand is then dug up and moved to a processing plant nearby. Because the valuable minerals make up only a small fraction of the total sand even in a good deposit, very large volumes of material move for every tonne of titanium mineral recovered. The gangue — the unwanted material, mostly quartz sand — is typically returned to the worked-out pit as a form of land rehabilitation.
Some deposits lie beneath water tables or shallow coastal lagoons, in which case a floating dredge cuts into the ore face and pumps a slurry of sand and water to a floating concentrator on the same pond. This avoids the need to dewater the pit and works continuously as the dredge advances. Dredging tends to suit flat, low-lying coastal plain deposits; open-pit truck-and-shovel operations suit harder or more elevated ore bodies. In either case, the grade of the ore — meaning the proportion of heavy minerals it contains — determines how much total sand must be handled per tonne of ilmenite or rutile produced. A lower-grade deposit requires moving proportionally more material, which increases fuel consumption, equipment wear and waste-handling cost even if the ore itself is cheap to excavate.
Titanium metal is not mined directly. What the mine produces is a mineral concentrate — grains of ilmenite or rutile separated from the quartz sand. This concentrate then travels to chemical plants, sometimes on a different continent, before it becomes anything resembling a metal. The gap between a mine producing mineral sand and a factory producing titanium sponge (the porous, metallic intermediate product) is therefore large, both in distance and in the number of separate industrial steps involved.
What pulls on it
Titanium's commercial life rests on a combination of properties that very few materials share: a strength-to-weight ratio competitive with high-strength steel, near-total resistance to corrosion in both seawater and biological fluids, and biocompatibility that allows it to sit inside the human body without triggering an immune response. These properties define which industries buy it. Aerospace — both commercial aviation and defence — has historically been the largest consumer, using titanium in airframe structures, landing gear, hydraulic tubing and the fan and compressor sections of jet engines where temperatures are moderate enough for titanium alloys to retain their strength.
The medical sector takes a smaller but very consistent share, concentrated in orthopaedic implants (hip and knee replacements, spinal hardware) and dental implants. Demand from this quarter grows broadly in line with ageing populations and expanding access to elective surgery in middle-income countries, and it is less sensitive to economic cycles than aerospace demand. Chemical processing and desalination plants use titanium for heat exchangers and reactor vessels that must handle corrosive media, though this is a smaller share of total consumption.
A newer source of demand appears in the end-markets table: proton exchange membrane (PEM) electrolysers, which use titanium in bipolar plates and porous transport layers because those components must conduct electricity while resisting the highly acidic, oxidising internal environment. The material-intensity table records the titanium requirement for this application as between 200 and 600 kilograms per megawatt of electrolyser capacity — a wide range that reflects design variation across manufacturers. If hydrogen electrolysis capacity grows substantially, the implied titanium requirement could become significant relative to current sponge output, though how quickly that demand materialises depends on factors beyond the metal itself. Demand would change sharply downward if aerospace build rates fell for a sustained period, as they did during the early 2020s, because that sector drives the premium end of the market and any excess sponge capacity depresses prices across the board.
암석 내 산출 위치
전체 광석 광물 →실제로 이를 함유하는 광물은 다음과 같다: titanium. 광체(orebody)란 채굴 비용을 충당할 만큼 특정 광물이 충분히 농집된 광상을 말한다.

Ilmenite
The dominant titanium mineral, about 45-65% TiO2, mined from heavy mineral sand deposits along ancient shorelines.

Rutile
Nearly pure titanium dioxide at about 95%. Scarcer and more valuable than ilmenite, and the preferred feed for titanium…
생산 주체
지도에서 보기 →Titanium sponge metal production
Titanium sponge metal productionmetric tons 2025 (추정치) 세계 합계 370,000 metric tons
USGS Mineral Commodity Summaries 2026 · Sponge metal production, not mineral concentrate — the two are different tables and different orders of magnitude. · 출처 ↗
나머지 열을 보려면 표를 옆으로 스크롤하십시오.
| 국가 | 생산 | 세계 비중 |
|---|---|---|
| China | 260,000 | 70.3% |
| Japan | 53,000 | 14.3% |
| Russia | 25,000 | 6.8% |
| Kazakhstan | 16,000 | 4.3% |
| Saudi Arabia | 12,000 | 3.2% |
| India | 300.0 | 0.1% |
| Germany | Zero | — |
| Mexico | Zero | — |
| Ukraine | Zero | — |
| United Kingdom | Zero | — |
| Other countries | Zero | — |
| United States | Zero | — |
| Australia | Zero | — |
| Canada | Zero | — |
| 세계 합계 | 370,000 | 100% |
'비공개'는 USGS가 개별 기업의 데이터 노출을 막기 위해 수치를 억제한 것으로, 0을 의미하지 않습니다. 출처가 각 수치를 독립적으로 반올림하고 '기타 국가' 항목을 항상 별도로 구분하지는 않기 때문에, 국가별 합계가 세계 합계와 일치하지 않을 수 있습니다.
가격
dollars per kilogram
연간 평균dollars per kilogram
기준: dollars per kilogram. 다음 자료에 게재된 연간 평균 USGS Mineral Commodity Summaries 2026 · 출처 ↗. 이 수치는 기준 연간 평균값이며, 실시간 시장 가격이 아니다.
처리·정련 지점
| 시설 | 종류 | 단계 | 국가 | 역할 |
|---|---|---|---|---|
| Aero-Engine Turbine Plant, Derby | 제조 플랜트 | 제품 | United Kingdom | 투입물 |
용도
전체 최종 시장 →| 최종 시장 | 거기에서의 기능 | 중요도 |
|---|---|---|
| Aerospace & Defence | Airframe and engine structure | 정의 |
| Medicine & Health | Implants and instruments | 정의 |
| Hydrogen & Electrolysis | PEM bipolar plates | 중요 |
| Robotics & Automation | Lightweight structural parts | 현재 |
기술별 소요량
| 기술 | 수량 | 고시 가격 | 기준 |
|---|---|---|---|
| PEM Electrolyser | 200.0–600.0 kg | per MW of capacity | Bipolar plates and porous transport layers |
Indicative range compiled from published technology studies and chemistry; verify against a manufacturer specification before use. 재료 계산기에서 임의의 규모로 이 수치를 계산하십시오. →
수출 통제
| 국가 | 지배력 | 적용 대상 |
|---|---|---|
| Vietnam | Export ban | Raw materials of iron, lead-zinc, chromite, manganese, apatite, and rare earths and deeply processed titanium (2012). ↗ |
USGS Mineral Commodity Summaries 2026, table 4 — controls in effect as of January 2026, excluding controls since lifted.